The described embodiments relate generally to electronic device packaging. More specifically, the described embodiments relate to an apparatus and design for a water proof electronic device package.
Mobile devices have become ubiquitous over the past two decades. From cell phones to MP3 players to hearing aids to digital cameras to Nintendo Gameboys, it is hard to find any person, young or old, that is not a heavy user of such devices. In recent years, the world of wireless sensor devices has witnessed rapid growth, one that is poised to enjoy rapid growth in the foreseeable future.
One class of wireless sensors that is gaining popularity is wearable motion sensing devices. These units, carried or worn by people on their bodies, have the ability to detect changes in acceleration, spatial orientation, gravitational force and angular momentum, and thereby provide a measure of the types of motion that are occurring on the human beings that they are tethered to. As a general rule, such devices are either affixed to the wrist via a wristband, to the upper arm through an armband, to a shoe via a shoe clip, to an ankle via an ankle strap, or simply clipped onto a garment that the person is wearing.
Through wearing these sensors, the motion of the person is registered, and can thereafter be subjected to motion analysis regarding the activities of the person. Such units typically detect human motions at the point where they are tethered to the body, and thereafter use those motions as being representative of the entire person.
These personal electronic devices continue to increase in complexity and decrease in size to the point where daily human motion-related wellness can be monitored. However, a device that monitors daily motion of a person must have several features including: a motion sensor, a means to wirelessly transmit the motion data, a wired digital interface for control, mechanical switches to enable features, method of charging internal battery, and it must all be enclosed in a waterproof enclosure.
It is desirable to have a waterproof electronic device package that protects internal electronic of the package while the electronic device package is worn (attached to) by a user during normal daily activities of the user.
An embodiment includes an electronic device apparatus. The apparatus includes a housing structure having an inner surface and an outer surface. A plurality of electrical feed-throughs extend through the housing structure from the outer surface to the inner surface. Each of the feed-throughs includes an outer surface cross-section and an inner surface cross-section and a pass through cross-section. The pass through cross-section of the feed-through is located at a portion of the feed-through that extends through the housing structure. The outer surface cross-section is located where the feed-through is exposed on the outer surface, and the inner surface cross-section located where the feed-through is exposed on the inner surface. The feed-through cross-section is less than the outer surface cross-section and the inner surface cross-section.
Other aspects and advantages of the described embodiments will become apparent from the following detailed description, taken in conjunction with the accompanying drawings, illustrating by way of example the principles of the described embodiments.
The described embodiments include an electronic device package that can include, for example, motion sensing electronics. For one embodiment, the package includes a plastic injection-molded enclosure. The enclosure provides a waterproof package that can include an embedded radio. Electrical feed through(s) in the enclosure provide conductive paths for charging of a battery within the enclosure, and for programming electronics within the enclosure, while maintaining a water seal.
The packaging is waterproof to the extent necessary to protect the internal device (electronics) from daily living activities such as bathing, a shower, or accidental emersion in a sink or clothes washing machine cycle. As mentioned, embodiments of the packaging contain an embedded radio for continuous communication of the state of motion of a person, piece of equipment, or any other item where tracking of its physical orientation versus time within range of a receiving base can be observed and recorded. While the described embodiments may be for a motion sensing device, it is to be understood that the electrical feed-through embodiments described, and the water-proof packaging described, can be utilized for electronic packaging in general.
The electrical feed through(s) in the enclosure allows for charging of the internal battery and digital interface signals to pass through the enclosure while maintaining a water seal. Embodiments of the enclosure additionally provide the ability to allow light from internal LED's to provide visual status of the device. Embodiments of the enclosure allow for transmission of sound signals from inside the device to aid in location of a lost device or to provide audible indication of the state of the device. Embodiments include an electrical switch interface to enable a feature or function without impact to the water seal.
As shown the feed-through 230 includes an outer surface cross-section 232, a feed-through cross-section 236 and an inner surface cross-section 234. The outer area of the feed-through 230 having the outer surface cross-section 232 is located adjacent to an outer surface 222 of the housing structure 220. The feed-through area of the feed-through 230 having the feed-through cross-section 236 is located within the housing structure 220. The inner area of the feed-through 230 having the inner surface cross-section 234 is located adjacent to the inner surface 224 of the housing structure 220.
As shown, the outer surface cross-section 232 and the inner surface cross-section 234 are both greater than the feed-through cross section 236. If properly formed, the shape of the feed-through 230 ensures that the housing structure is water proof, while still allowing signals and/or power supply signals to pass through the housing structure. The feed-through 230 physically contacts the housing structure 220 at multiple surfaces, ensuring that the feed-through 230/housing structure 220 combination is water proof. That is, embodiments include the inner area, the feed-through area and the outer area physically contacting the housing structure 220.
The deformation of the rivet forms a water proof electrical connection through the housing of the electronic apparatus. Similar to previously described embodiments, a controller circuit board can be attached to the housing, wherein a spring conductor provides an electrical connection between the rivet and the controller circuit board.
The first method of implementing the electrical feed-throughs includes a plated-through hole with contact areas on each side of the plastic enclosure larger than the hole. This allows a spring pressure contact on both sides allowing electrical signals to pass through the enclosure while maintaining the water seal required. Typically, a cross-section of the plated ends on each side of the housing is greater than the cross-section of the conductor passing through the hole in the housing. The plated ends of the feed throughs provide a water-tight seal.
An alternate way of manufacturing the electrical feed through is with a metal insert similar to a mechanical structural rivet which can be inserted and the inserted end deformed to permanently attach the rivet to the plastic case while maintaining the water seal. Before being inserted through a hole in the housing, the rivet includes an end that has a head having a cross-section that is greater than the rest of the rivet. The rivet is inserted through a hole in the housing of the mobile electronic device. The non-head end of the rivet extends through the hole after insertion through the hole. The non-head end is then deformed so that after deformation, the deformed end has a cross-section that is greater than the body of the rivet that is extended through the hole. The deformation process forms a water-tight seal of the hole.
The manufacturing method used can selected by evaluating the sealing effectiveness and cost associated with the chosen method.
Generally, the housing of the electronic device includes two halves which are sealed after formation of the electrical feed throughs, and after attachment of the circuit board that is to reside within the electronic device. The method of sealing the two halves of the plastic enclosure can be done with ultrasonic or thermal welding techniques. There is no need to open the enclosure after final assembly so either method of permanent sealing can be employed.
Although specific embodiments have been described and illustrated, the embodiments are not to be limited to the specific forms or arrangements of parts so described and illustrated. The embodiments are limited only by the appended claims.
This patent application claims priority to U.S. provisional patent application Ser. No. 61/222,308 filed on Jul. 1, 2009, which is incorporated by reference.
Number | Date | Country | |
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61222308 | Jul 2009 | US |